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Die im Mittelhirn lokalisierten dopaminergen (DA) Neurone sind in einer Vielzahl von Hirnfunktionen involviert und werden aufgrund von anatomischen, molekularen sowie funktionellen Unterschieden in mehrere Subpopulationen aufgeteilt. DA Neurone, die in der Substantia nigra (SN) pars compacta lokalisiert sind, spielen durch ihre Projektion in das dorsale Striatum eine Rolle in der Steuerung der Willkürmotorik. Die Area tegmentalis ventralis (VTA) enthält DA Neurone, die in den präfrontalen Cortex, die basolateralen Amygdala sowie den Nucleus accumbens projizieren und in höheren kognitiven Funktionen, wie dem Arbeitsgedächtnis, der Motivation sowie belohnungsassoziierten Lernvorgängen involviert sind.
In dieser Arbeit wurden die differentiellen Eigenschaften des transienten A-Typ Kaliumstroms sowie dessen Funktion für die intrinsische elektrische Aktivität und die Integration von synaptischen Eingängen in Subpopulationen von DA Neuronen untersucht. Dieser spannungsgesteuerte Strom ist an der Kontrolle der Schrittmacheraktivität beteiligt, beeinflusst die Form und Dauer von Aktionspotentialen und moduliert die Erregbarkeit des somatodendritischen Kompartiments. Der A-Typ Kaliumkanal besteht in DA Neuronen aus einem Tetramer von porenbildenden KV4.3 α-Untereinheiten. Die Koexpression von akzessorischen β-Untereinheiten moduliert maßgeblich die biophysikalischen Parameter des A-Stroms, wie z. B. die Kinetik der Inaktivierung sowie die Spannungsabhängigkeit der Aktivierung und Inaktivierung. Zu diesen β-Untereinheiten gehören die cytoplasmatischen Kaliumkanal-interagierenden Proteine (KChIPs) sowie die transmembranären Dipeptidylpeptidase-ähnlichen Proteine (DPPLs). Während in DA SN Neuronen vor allem KChIP3 exprimiert wird und einen schnell inaktivierenden A-Strom gewährleistet, sind DA VTA Neurone durch die zusätzliche Expression der KChIP4a Splice-Variante charakterisiert, welche durch Inhibition der schnellen Inaktivierung in einem langsam inaktivierenden A-Strom resultiert. Die Bedeutung der differentiellen KChIP4a-Expression für DA Mittelhirnneurone wurde mit Hilfe von KChIP4-Knock-Out (KO)-Mäusen untersucht. Alle Versuche wurden in vitro an akuten Hirnschnitten adulter Wildtyp (WT)- und KChIP4-KO-Tiere durchgeführt und die DA neurochemische Identität sowie die Lage der gemessenen Zellen im Anschluss immunhistochemisch bestätigt. Die biophysikalischen Eigenschaften des A-Stroms wurden mit der Patch-Clamp Technik in der nucleated outside-out Konfiguration untersucht, welche optimale Bedingungen für Voltage-Clamp Experimente gewährleistet. Der A-Strom in DA VTA Neuronen aus KChIP4-KO-Tieren wies dabei eine siebenfach schnellere Inaktivierungskinetik als in vergleichbaren Neuronen aus WT-Tieren auf, während die Inaktivierungskinetik in DA SN Neuronen aus KChIP4-KO-Tieren lediglich um den Faktor zwei schneller war. Außerdem wurde festgestellt, dass selektiv in DA VTA Neuronen das halbmaximale Aktivierungspotential ebenfalls von der KChIP4-Expression abhängig war. Somit konnte gezeigt werden, dass die Expression von KChIP4 für die charakteristischen A-Strom-Eigenschaften von DA VTA Neuronen verantwortlich ist.
Die funktionelle Rolle des KChIP4-vermittelten langsamen A-Stroms wurde mit Hilfe von Current-Clamp Messungen in Ganzzellableitungen untersucht. Dabei wurde deutlich, dass die Expression von KChIP4 die Spontanaktivität von DA SN und VTA Neuronen nicht beeinflusst. Das für DA VTA Neuronen charakteristische verzögerte Wiedereintreten der Spontanaktivität nach einer Inhibition zeigte allerdings eine Abhängigkeit von der KChIP4-Expression, da der sog. rebound delay in DA VTA Neuronen aus KChIP4-KO-Tieren signifikant kürzer war, als in Zellen aus WT-Tieren. Dies konnte sowohl durch Strominjektionen, die in ihrer Kinetik GABAergen synaptischen Eingängen ähnelten, als auch nach direkter Aktivierung von GABA-Rezeptoren durch iontophoretische GABA-Applikation bestätigt werden. KChIP4 könnte somit einen internen Verzögerungsmechanismus nach einer transienten Inhibition von DA Neuronen gewährleisten, die z.B. bei Präsentation von aversiven Stimuli sowie beim Ausbleiben von erwarteten Belohnungen auftritt. Somit könnte die physiologische Relevanz des KChIP4-gesteuerten A-Stroms in der Integration von inhibitorischen synaptischen Eingängen im Kontext von belohnungsgesteuerten Lernprozessen liegen.
Zottelige Landschaftspfleger
(2013)
Glioblastoma is the most common and most aggressive type of brain tumor in adults. In contrast to epithelial cancers, glioblastomas do not metastasize. While the major treatment challenge in epithelial cancers is not the primary tumor but metastasis, glioblastoma patients die of the primary tumor.
However, there is a common theme which underlies the malignant properties of progressed epithelial cancers and glioblastoma: invasion from the primary tumor into the surrounding tissue. In the case of epithelial cancers this is the first and necessary step to metastasis, whereas invasion leads inevitably to tumor recurrence after resection in the case of glioblastoma, causing it to be incurable.
A cellular program which has been described in detail to promote the invasive phenotype in epithelial tumors, is the epithelial-mesenchymal-transition (EMT). Differentiated neural cells are not epithelial, thus, strictly speaking, EMT does not occur in glioblastoma. However, the traits acquired in the process of EMT, especially invasiveness and stemness, are highly relevant to glioblastoma. One of the key transcription factors known to induce EMT in epithelial cancers is ZEB1, which has been described only marginally in the central nervous system so far. Here, I investigate the expression and function of ZEB1 in glioblastoma and during human fetal neural development.
ZEB1 mRNA was significantly upregulated in all histological types of glioma, including glioblastoma, when compared to normal brain. There was no correlation between ZEB1 mRNA levels and tumor grade. Immunohistochemical staining of glioma samples demonstrated that ZEB1 was highly expressed in the great majority of tumor cells. In the developing human brain, intense staining for ZEB1 could be observed in the ventricular and subventricular zone, where stem- and progenitor cells reside. ZEB1 positive cells included cells stained with stem- and progenitor markers like PAX6, GFAP and Nestin. In contrast, ZEB1 was never found in early neuronal cells as identified by TUBB3 staining.
To gain insight into ZEB1 function I generated a human fetal neural stem cell line and a glioblastoma cell line with ZEB1 knockdown, which were compared with their respective control cell lines. First, I found that ZEB1 does not regulate the micro RNA 200 family in either cell line, which has been described as an essential ZEB1 target in epithelial cancers. Second, regulated target genes were identified with a genome wide microarray. The third approach was to directly identify genomic binding sites of ZEB1 by chromatin immunoprecipitation sequencing (ChIP-seq). All three approaches showed that the ZEB1 transcriptional program is surprisingly similar in the neural stem cell line and the glioblastoma cell line. In contrast, it bears only little resemblance to the program described in epithelial cancers.
The most interesting, previously unrecognized ZEB1 target gene identified in this study is integrin b1. It was regulated after ZEB1 knockdown detected by microarray analysis, and has a ZEB1 binding site in its promoter region detected by ChIP-seq. Finally, I addressed the question whether ZEB1 influences tumor growth and invasiveness in a glioblastoma model. After intracranial xenotransplantation in mice, ZEB1 knockdown glioblastoma cells formed significantly smaller and less invasive tumors than control glioblastoma cells.
This study demonstrates that ZEB1 is widely expressed in glioma and relevant for glioblastoma growth and invasion. In contrast to what is known about ZEB1 function in epithelial cancers, ZEB1 is not associated with glioma progression, but instead seems to be an early and necessary event in tumorigenesis. Also with regard to ZEB1 target genes, ZEB1 functions differently in glioblastoma than in epithelial cancers. The two most important ZEB1 targets in epithelial cancers are E-cadherin and the miR-200 family members. Both are not relevant to ZEB1 function in glioblastoma. Interestingly, while the ZEB1 transcriptional program is different from the one described in epithelial cancers, it is highly similar in glioblastoma cells and fetal neural stem cells. This suggests that an embryonic pathway restricted to stem- and progenitor cells during development is reactivated in glioblastoma.
Previously known ZEB1 target genes were tissue specific and therefore seemed unlikely to mediate ZEB1 function in the central nervous system. However, the newly identified ZEB1 target gene integrin b1 is well known to play pivotal roles in both glioblastoma tumorigenesis and invasion as well as in neural stem cells. Additionally, integrin b1 is widely expressed and seems a likely ZEB1 target in other organs than the brain.
Taken together, I demonstrate that ZEB1 is a new regulator of glioblastoma growth and invasion. The transcriptional program of ZEB1 differs from the one in epithelial cancers but is strikingly similar to the one in neural stem cells. The newly identified ZEB1 target gene integrin b1 is likely to mediate crucial ZEB1 functios. Thus, this study identifies ZEB1 as a yet unrecognized player in glioblastoma and neural development. Furthermore, it sets the stage for more research which will help to deepen our understanding of ZEB1 function in the central nervous system and beyond.
Introduction: Gastropoda are guided by several sensory organs in the head region, referred to as cephalic sensory organs (CSOs). These CSOs are innervated by distinct nerves. This study proposes a unified terminology for the cerebral nerves and the categories of CSOs and then investigates the neuroanatomy and cellular innervation patterns of these cerebral nerves, in order to homologise them. The homologisation of the cerebral nerves in conjunction with other data, e.g. ontogenetic development or functional morphology, may then provide insights into the homology of the CSOs themselves.
Results: Nickel-lysine axonal tracing (“backfilling”) was used to stain the somata projecting into specific nerves in representatives of opisthobranch Gastropoda. Tracing patterns revealed the occurrence, size and relative position of somata and their axons and enabled these somata to be mapped to specific cell clusters. Assignment of cells to clusters followed a conservative approach based primarily on relative location of the cells. Each of the four investigated cerebral nerves could be uniquely identified due to a characteristic set of soma clusters projecting into the respective nerves via their axonal pathways.
Conclusions: As the described tracing patterns are highly conserved morphological characters, they can be used to homologise nerves within the investigated group of gastropods. The combination of adequate number of replicates and a comparative approach allows us to provide preliminary hypotheses on homologies for the cerebral nerves. Based on the hypotheses regarding cerebral nerve homology together with further data on ultrastructure and immunohistochemistry of CSOs published elsewhere, we can propose preliminary hypotheses regarding homology for the CSOs of the Opisthobranchia themselves.
In dieser Arbeit wurde die physiologische Funktion der Klasse I Methyltransferase Rrp8 bei der Ribosomen-Biogenese der Hefe Saccharomyces cerevisiae untersucht. Ziel war es, die Bedeutung des Proteins für die rRNA-Prozessierungsschritte besser zu verstehen und das Substratmolekül zu identifizieren, das durch die katalytische Aktivität von Rrp8p modifiziert wird.
In einer rrp8-ΔC Mutante, bei der die für die C-terminale Methyltransferase-Domäne codierende Sequenz deletiert vorlag, konnte eine leichte Mengenreduktion der 40S Untereinheit gefunden werden, was für eine Beteiligung von Rrp8p an der Biogenese der kleinen Untereinheit sprach. Unter Anwendung eines artifiziellen Tetrazyklin-Aptamer-Systems, das die Regulation der Expression eines spezifischen Gens erlaubt, wurde eine bereits vorher bekannte synthetische Interaktion mit der essentiellen 90SKomponente Nep1p bestätigt. Mit Hilfe dieses Expressionssystems konnte auch für eine reduzierte Expression von Nop14p, einem Interaktionspartner des Nep1-Proteins, eine synthetisch kranke Beziehung mit rrp8-ΔC festgestellt werden. Zusammen mit der Untersuchung des Sedimentationsverhaltens eines markierten Rrp8-Proteins und bekannten Daten aus der Literatur wiesen die genetischen Analysen darauf hin, dass Rrp8p neben dem Einfluss auf späte Reifungsschritte des 90S prä-Ribosoms auch für die frühen Reifungsschritte der 60S Untereinheit wichtig ist. Weitere Interaktionen mit Faktoren, die an der Translation beteiligt sind (TIF4631, DOM34) und die Messung der Translationsaktivität zeigten, dass der Ausfall von Rrp8p nicht nur die Biogenese verzögert, sondern gleichfalls die Funktionsfähigkeit des Ribosoms beeinflusst.
Die in dieser Arbeit durchgeführte phänotypische Analyse einer rrp8-ΔC tc-GAR1 Doppelmutante unterstützte die Vermutung, dass Rrp8p auch frühe Reifungsschritte der 60S Untereinheit beeinflusst. Mit einem in vitro Experiment konnte die Bindung von SAM an Rrp8p gezeigt werden und RP-HPLC Analysen der 25S rRNA verdeutlichten, dass Rrp8p neben dem Einfluss auf die Prozessierungsstelle A2 für die m1A645 Modifikation in Helix 25.1 verantwortlich ist. Die phänotypische Untersuchung einer von P. Kötter und S. Lamberth angefertigten rRNA Mutante (A645U) zeigte, dass die Sequenzveränderung innerhalb der Helix 25.1 der 25S rRNA, die zugleich zum Verlust der Modifikation führt, eine deutliche Auswirkung auf das Zellwachstum und auf das Polysomenprofil hat. Ähnliche Polysomenprofile wurden in den Mutanten rrp8-G209R und rrp8-G209A beobachtet, die ein punktmutiertes Rrp8-Protein exprimieren. Eine reduzierte SAM-Bindungsaktivität des mutierten Proteins führte ebenfalls zu einer reduzierten Menge an m1A645 modifizierter 25S rRNA. Eine im Unterschied zur rrp8-ΔC Mutante auftretende Reduktion der 60S Untereinheit in den Punktmutanten spricht für einen bisher noch unbekannten Einfluss von Rrp8p auf die Biogenese der 60S Untereinheit.
In Zusammenarbeit mit S. Sharma durchgeführte 2D-DIGE Experimente und quantitative Messungen von Transkriptmengen zeigten, dass im Vergleich zu einem Wildtyp-Stamm in einer rrp8-ΔC Mutante einige glykolytische Enzyme in geringerem Maße exprimiert werden, was in Zusammenhang mit einer in höheren Eukaryoten bekannten nukleolären Stressantwort gebracht werden kann. Dies verdeutlicht die komplexe Wechselwirkung zwischen der Ribosomenfunktion und dem Energiemetabolismus.
he Influence of trehalose-based glycolipids in the virulence of Mycobacterium tuberculosis (Mtb) is recognised; however, the actual role of these cell-wall glycolipids in latent infection is unknown. As an initial approach, we determined by two-dimensional thin-layer chromatography the sulfolipid (SL) and diacyltrehalose/polyacyltrehalose (DAT/PAT) profile of the cell wall of hypoxic Mtb. Then, qRT-PCR was extensively conducted to determine the transcription profile of genes involved in the biosynthesis of these glycolipids in non-replicating persistent 1 (NRP1) and anaerobiosis (NRP2) models of hypoxia (Wayne model), and murine models of chronic and progressive pulmonary tuberculosis. A diminished content of SL and increased amounts of glycolipids with chromatographic profile similar to DAT were detected in Mtb grown in the NRP2 stage. A striking decrease in the transcription of mmpL8 and mmpL10 transporter genes and increased transcription of the pks (polyketidesynthase) genes involved in SL and DAT biosynthesis were detected in both the NRP2 stage and the murine model of chronic infection. All genes were found to be up-regulated in the progressive disease. These results suggest that SL production is diminished during latent infection and the DAT/PAT precursors can be accumulated inside tubercle bacilli and are possibly used in reactivation processes.
Objective: Loss of function mutations in PINK1 typically lead to early onset Parkinson disease (PD). Zebrafish (Danio rerio) are emerging as a powerful new vertebrate model to study neurodegenerative diseases. We used a pink1 mutant (pink−/−) zebrafish line with a premature stop mutation (Y431*) in the PINK1 kinase domain to identify molecular mechanisms leading to mitochondrial dysfunction and loss of dopaminergic neurons in PINK1 deficiency.
Methods: The effect of PINK1 deficiency on the number of dopaminergic neurons, mitochondrial function, and morphology was assessed in both zebrafish embryos and adults. Genome-wide gene expression studies were undertaken to identify novel pathogenic mechanisms. Functional experiments were carried out to further investigate the effect of PINK1 deficiency on early neurodevelopmental mechanisms and microglial activation.
Results: PINK1 deficiency results in loss of dopaminergic neurons as well as early impairment of mitochondrial function and morphology in Danio rerio. Expression of TigarB, the zebrafish orthologue of the human, TP53-induced glycolysis and apoptosis regulator TIGAR, was markedly increased in pink−/− larvae. Antisense-mediated inactivation of TigarB gave rise to complete normalization of mitochondrial function, with resulting rescue of dopaminergic neurons in pink−/− larvae. There was also marked microglial activation in pink−/− larvae, but depletion of microglia failed to rescue the dopaminergic neuron loss, arguing against microglial activation being a key factor in the pathogenesis.
Interpretation: Pink1−/− zebrafish are the first vertebrate model of PINK1 deficiency with loss of dopaminergic neurons. Our study also identifies TIGAR as a promising novel target for disease-modifying therapy in PINK1-related PD. Ann Neurol 2013;74:837–847
Background: Protein translocation across membranes is a central process in all cells. In the past decades the molecular composition of the translocation systems in the membranes of the endoplasmic reticulum, peroxisomes, mitochondria and chloroplasts have been established based on the analysis of model organisms. Today, these results have to be transferred to other plant species. We bioinformatically determined the inventory of putative translocation factors in tomato (Solanum lycopersicum) by orthologue search and domain architecture analyses. In addition, we investigated the diversity of such systems by comparing our findings to the model organisms Saccharomyces cerevisiae, Arabidopsis thaliana and 12 other plant species.
Results: The literature search end up in a total of 130 translocation components in yeast and A. thaliana, which are either experimentally confirmed or homologous to experimentally confirmed factors. From our bioinformatic analysis (PGAP and OrthoMCL), we identified (co-)orthologues in plants, which in combination yielded 148 and 143 orthologues in A. thaliana and S. lycopersicum, respectively. Interestingly, we traced 82% overlap in findings from both approaches though we did not find any orthologues for 27% of the factors by either procedure. In turn, 29% of the factors displayed the presence of more than one (co-)orthologue in tomato. Moreover, our analysis revealed that the genomic composition of the translocation machineries in the bryophyte Physcomitrella patens resemble more to higher plants than to single celled green algae. The monocots (Z. mays and O. sativa) follow more or less a similar conservation pattern for encoding the translocon components. In contrast, a diverse pattern was observed in different eudicots.
Conclusions: The orthologue search shows in most cases a clear conservation of components of the translocation pathways/machineries. Only the Get-dependent integration of tail-anchored proteins seems to be distinct. Further, the complexity of the translocation pathway in terms of existing orthologues seems to vary among plant species. This might be the consequence of palaeoploidisation during evolution in plants; lineage specific whole genome duplications in Arabidopsis thaliana and triplications in Solanum lycopersicum.
The TolC-like protein HgdD of the filamentous, heterocyst-forming cyanobacterium Anabaena sp. PCC 7120 is part of multiple three-component "AB-D" systems spanning the inner and outer membranes and is involved in secretion of various compounds, including lipids, metabolites, antibiotics, and proteins. Several components of HgdD-dependent tripartite transport systems have been identified, but the diversity of inner membrane energizing systems is still unknown. Here we identified six putative resistance-nodulation-cell division (RND) type factors. Four of them are expressed during late exponential and stationary growth phase under normal growth conditions, whereas the other two are induced upon incubation with erythromycin or ethidium bromide. The constitutively expressed RND component Alr4267 has an atypical predicted topology, and a mutant strain (I-alr4267) shows a reduction in the content of monogalactosyldiacylglycerol as well as an altered filament shape. An insertion mutant of the ethidium bromide-induced all7631 did not show any significant phenotypic alteration under the conditions tested. Mutants of the constitutively expressed all3143 and alr1656 exhibited a Fox(-) phenotype. The phenotype of the insertion mutant I-all3143 parallels that of the I-hgdD mutant with respect to antibiotic sensitivity, lipid profile, and ethidium efflux. In addition, expression of the RND genes all3143 and all3144 partially complements the capability of Escherichia coli ΔacrAB to transport ethidium. We postulate that the RND transporter All3143 and the predicted membrane fusion protein All3144, as homologs of E. coli AcrB and AcrA, respectively, are major players for antibiotic resistance in Anabaena sp. PCC 7120.
Cell-cell adhesion is an essential process during the development of multicellular organisms. It is based on various cellular junctions and ensures a tight contact between neighboring cells, enabling interactive exchanges necessary for morphological and functional differentiation and maintaining the homeostasis of healthy tissue organization. Two important types of cell-cell adhesions are the adherens junction (AJ) and the desmosome which link the actin cytoskeleton and intermediate filaments to cadherin-based adhesion sites. The core of these structures is composed of single-span transmembrane proteins of the cadherin superfamily which include, among other members, the classical cadherins, e.g. E-cadherin, as well as the desmosomal cadherins, e.g. desmoglein-3. The cytoplasmic domains of the desmosomal and classical cadherins enable interactions with proteins of the catenin family. Classical cadherins preferentially associate with β-catenin and p120-catenin, whereas desmosomal cadherins bind to γ-catenin and plakophilins. Intriguingly, γ-catenin, also known as plakoglobin, is so far the only protein known to be present both in the AJ and the desmosome.
In this study, we showed that the two homologous, membrane raft-associated proteins flotillin-1 and flotillin-2 associate with core proteins of the AJ and the desmosome in vitro and in vivo. In confluent human, non-malignant epithelial MCF10A cells and human skin cryosections, flotillin-2 colocalized with E-cadherin, desmoglein-3 and γ-catenin at cell-cell contact sites, whereas flotillin-1 showed barely any overlap with these proteins. In addition, we detected a colocalization of both flotillins with the actin-binding protein α-actinin in membrane ruffles in subconfluent and at cell-cell contact sites in confluent MCF10A cells as well as in human skin cryosections. The interaction with α-actinin was later shown to be flotillin-1 dependent by performing indirect GST pulldown experiments with purified α-actinin-1-GST in MCF10A cell lysates.
Since flotillin-2 strongly colocalized with cell-cell junctions, this suggested that flotillins might be found in complex with cell adhesion proteins. Thus, we performed coimmunoprecipitation experiments in murine skin lysates and various cell lines of epithelial origin, such as human breast cancer MCF7 cells, human keratinocyte HaCaT cells and primary mouse keratinocytes. These experiments demonstrated that flotillins, especially flotillin-2, coprecipitated with E-cadherin, desmosomal cadherins and γ-catenin in relation to the respective cell type and the maturation status of these cell-cell adhesion structures. However, since γ-catenin is so far the only protein known to be present in the AJ and the desmosome, we further assumed that the complex formation of flotillins with cell adhesion structures is mediated by γ-catenin. For this, we performed indirect GST pulldown experiments in MCF10A cell lysates with bacterially expressed, purified flotillin-1-GST, flotillin-2-GST and γ-catenin-GST and were able to verify the complex formation of adhesion proteins and flotillins in vitro. To further test if the interaction of γ-catenin and flotillins is a direct one, we used purified flotillin-1-GST or flotillin-2-GST and γ-catenin-MBP fusion proteins. Both flotillins directly interacted with γ-catenin in this in vitro assay. In addition, mapping of the interaction domains in γ-catenin by using GST fusion proteins carrying different parts of γ-catenin suggested that flotillins bind to a discontinuous γ-catenin binding domain which consists of a Major determinant around ARM domains 6-12, most likely with a major contribution of the ARM domain 7, and possibly including the NT part of γ-catenin.
To study the effect of flotillin depletion on cell-cell adhesion, we generated stable MCF10A cell lines in which flotillins were knocked down by means of lentiviral shRNAs. Staining of E-cadherin and γ-catenin in these cells showed that the localization at the cell-cell borders was significantly altered after flotillin-2 depletion, which pointed to a role for flotillin-2 in the formation of cell-cell adhesion structures in epithelial cells. Furthermore, isolation of detergent resistant membranes (DRMs) from these cells demonstrated that upon depletion of flotillin-2, a significant amount of E-cadherin and γ-catenin shifted into raft fractions. On the contrary, no change was detected in flotillin-1 knockdown cells. These observations point to a functional role of flotillin-2 in the regulation of raft association of cell-cell adhesion proteins. To gain more insight into the in vivo relevance of our findings, we next studied the function of flotillins in the skin of Flot2-/- knockout mice. Analysis of lysates prepared from the skin of one year old female animals revealed an increased expression of E-cadherin, desmoglein-1 and γ-catenin but not β-catenin, implicating that specific adhesion proteins are upregulated in flotillin-2 knockout skin.
Since flotillins are tightly associated with membrane microdomains we next studied the interaction of flotillin-2 with membrane cholesterol. Using the photoreactive cholesterol analog azocholestanol, we were able to show that flotillin-2 and cholesterol directly interacted. In addition, previous studies speculated that flotillin-2 interacts with cholesterol via two putative cholesterol recognition/interaction amino acid consensus (CRAC) motifs. Analysis of the flotillin-2 sequence revealed that flotillin-2 actually contains four putative CRAC motifs. However, using various flotillin-2 CRAC mutant GFP fusion proteins, we were able to show that none of the putative CRAC motifs is functional, which suggested that flotillin-2 interacts with membrane cholesterol, e.g., via posttranslational modifications, such as myristoylation and palmitoylation which were previously shown to be essential for membrane association of flotillin proteins.